Using Digitized Newspapers to Address Measurement Error in Historical Data

Author:

Ferrara Andreas,Ha Joung Yeob,Walsh Randall

Abstract

This paper shows how to remove attenuation bias in regression analyses due to measurement error in historical data for a given variable of interest by using a secondary measure that can be easily generated from digitized newspapers. We provide three methods for using this secondary variable to deal with non-classical measurement error in a binary treatment: set identification, bias reduction via sample restriction, and a parametric bias correction. We demonstrate the usefulness of our methods by replicating four recent economic history papers. Relative to the initial analyses, our results yield markedly larger coefficient estimates.

Publisher

Cambridge University Press (CUP)

Subject

Economics, Econometrics and Finance (miscellaneous),Economics and Econometrics,History

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